4.6 Article

Evolution of the mechanical and tribological properties of DLC thin films doped with low-concentration hafnium on 316L steel

Journal

JOURNAL OF PHYSICS D-APPLIED PHYSICS
Volume 51, Issue 2, Pages -

Publisher

IOP PUBLISHING LTD
DOI: 10.1088/1361-6463/aa9c2d

Keywords

diamond-like thin film; process parameters; hafnium doping; mechanical property; tribological property

Funding

  1. National Natural Science Foundation of China [11364011]
  2. Guangxi Natural Science Foundation of Guangxi [2015GXNS-FAA139004]
  3. Innovation Project of Guangxi Graduate Education [YCSW2017159]

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Low concentrations (< 1 at%) of hafnium doped into diamond-like thin films (Hf-DLC) were deposited on 316L stainless steel and silicon (1 0 0) substrates by magnetron sputtering to attain superior mechanical and tribological properties. Ar and CH4 were used as source gases. The microstructure, chemical composition, and morphology of the Hf-DLC thin films in various concentrations were analyzed using x-ray diffraction, Raman spectroscopy, x-ray photoelectron spectroscopy, scanning electron microscopy and atomic force microscopy. Results showed that Hf species transferred from the particulate microstructure to Hf carbide phases, and the surface roughness increased monotonically with increasing Hf concentration. Moreover, the hardness and elastic modulus exhibited high values when the doped Hf concentration was 0.42 at%. Similarly, the tribological behaviors and wear life of Hf-DLC thin films had a low friction coefficient and excellent wear resistance at 0.42 at% Hf concentration. Therefore, 0.42 at% Hf is an optimal doping concentration to improve the mechanical and tribological properties of DLC thin films. Generally, the use of low-concentration Hf doping into DLC thin films is novel, and the present results provide guidance for the selection of suitable and effective concentration to optimize Hf-DLC thin films with superior performance.

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